论文标题

部分可观测时空混沌系统的无模型预测

Topological Anderson insulators with different bulk states in quasiperiodic chains

论文作者

Tang, Ling-Zhi, Liu, Shu-Na, Zhang, Guo-Qing, Zhang, Dan-Wei

论文摘要

我们研究了一维遗传学和非温和的su-schrieffer-heeger链的拓扑和定位,并带有准膜跳跃调制。在Hermitian情况下,通过数值和分析计算各种拓扑和本地化字符获得相图。我们显示了由于由准碘疾病驱动的独立拓扑和定位相变的共存,拓扑扩展,中间和局部阶段的存在。与一维随机疾病系统中的无间隙和局部TAI相不同,我们发现了三种类型的准二膜序列诱导的间隙间隙拓扑拓扑剂Anderson绝缘子(TAIS),并具有扩展的中间体(具有移动性边缘),并在这款脊椎链中局部体积状态。此外,我们通过分别考虑了两种非混合复合物跳跃阶段和不对称跳跃强度的非热智慧,研究了对TAI的非热式影响。我们证明,三种类型的tais在非热扰动下保存具有某些独特的本地化和拓扑特性,例如非荷里式的真实复杂性和本地化过渡及其拓扑性质。我们的工作表明,在赫尔米尼亚和非甲状化的准膜系统中,无序引起的TAI与Anderson的过渡无关,并且具有各种定位特性。

We investigate the topology and localization of one-dimensional Hermitian and non-Hermitian Su-Schrieffer-Heeger chains with quasiperiodic hopping modulations. In the Hermitian case, phase diagrams are obtained by numerically and analytically calculating various topological and localization characters. We show the presence of topological extended, intermediate, and localized phases due to the coexistence of independent topological and localization phase transitions driven by the quasiperiodic disorder. Unlike the gapless and localized TAI phase in one-dimensional random disordered systems, we uncover three types of quasiperiodic-disorder-induced gapped topological Anderson insulators (TAIs) with extended, intermediate (with mobility edges), and localized bulk states in this chiral chain. Moreover, we study the non-Hermitian effects on the TAIs by considering two kinds of non-Hermiticities from the non-conjugate complex hopping phase and asymmetric hopping strength, respectively. We demonstrate that three types of TAIs preserve under the non-Hermitian perturbations with some unique localization and topological properties, such as the non-Hermitian real-complex and localization transitions and their topological nature. Our work demonstrates that the disorder-induced TAIs in Hermitian and non-Hermitian quasiperiodic systems are not tied to Anderson transitions and have various localization properties.

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